Combining electrospinning and cell sheet technology for the development of a multiscale tissue engineered ligament construct (TELC)

被引:20
|
作者
Vaquette, Cedryck [1 ]
Kumar, P. T. Sudheesh [2 ]
Petcu, Eugen Bogdan [2 ,3 ]
Ivanovski, Saso [2 ]
机构
[1] QUT, Brisbane, Qld, Australia
[2] Griffith Univ, Menzies Hlth Inst Queensland, Gold Coast, Qld 4222, Australia
[3] Griffith Univ, Sch Med, Gold Coast, Qld 4222, Australia
关键词
electrospinning; cell sheet; anterior cruciate ligament; braiding; tissue remodelling; tissue engineering; ANTERIOR CRUCIATE LIGAMENT; MESENCHYMAL STEM-CELLS; MARROW STROMAL CELLS; IN-VITRO; SCAFFOLD DESIGN; POLYCAPROLACTONE SCAFFOLD; SILK SCAFFOLD; KNEE-JOINT; TENDON; BONE;
D O I
10.1002/jbm.b.33828
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Ligament tissue rupture is a common sport injury. Although current treatment modalities can achieve appropriate reconstruction of the damaged ligament, they present significant drawbacks, mostly related to reduced tissue availability and pain associated with tissue harvesting. Stem cell based tissue regeneration combined with electrospun scaffolds represents a novel treatment method for torn ligaments. In this study, a low fiber density polycaprolactone (PCL) electrospun mesh and sheep mesenchymal stem cells (sMSCs) were used to develop tissue engineered ligament construct (TELC) in vitro. The assembly of the TELC was based on the spontaneous capacity of the cells to organize themselves into a cell sheet once seeded onto the electrospun mesh. The cell sheet matured over 4 weeks and strongly integrated with the low fiber density electrospun mesh which was subsequently processed into a ligament-like bundle and braided with two other bundles to develop the final construct. Live/dead assay revealed that the handling of the construct through the various phases of assembly did not cause significant difference in viability compared to the control. Mechanical evaluation demonstrated that the incorporation of the cell sheet into the braided construct resulted in significantly modifying the mechanical behavior. A stress/displacement J-curve was observed for the TELC that was similar to native ligament, whereas this particular feature was not observed in the non-cellularized specimens. The regenerative potential of the TELC was evaluated ectopically in immunocompromized rats, compared to non cellularized electrospun fiber mesh and this demonstrated that the TELC was well colonized by host cells and that a significant remodelling of the implanted construct was observed. (c) 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 106B: 399-409, 2018.
引用
收藏
页码:399 / 409
页数:11
相关论文
共 50 条
  • [41] Design and development of engineered receptors for cell and tissue engineering br
    Javdan, Shwan B.
    Deans, Tara L.
    CURRENT OPINION IN SYSTEMS BIOLOGY, 2021, 28
  • [42] Toward the Development of Bioengineered Human Three-Dimensional Vascularized Cardiac Tissue Using Cell Sheet Technology
    Matsuura, Katsuhisa
    Shimizu, Tatsuya
    Okano, Teruo
    INTERNATIONAL HEART JOURNAL, 2014, 55 (01) : 1 - 7
  • [43] Development of Tissue-Engineered Ligaments: Elastin Promotes Regeneration of the Rabbit Medial Collateral Ligament
    Hirukawa, Masaki
    Katayama, Shingo
    Sato, Tatsuya
    Yamada, Masayoshi
    Kageyama, Satoshi
    Unno, Hironori
    Suzuki, Yoshiaki
    Miura, Yoshihiro
    Shiratsuchi, Eri
    Hasegawa, Masahiro
    Miyamoto, Keiichi
    Horiuchi, Takashi
    ARTIFICIAL ORGANS, 2018, 42 (06) : E102 - E113
  • [44] Fabrication of a thermoresponsive cell culture dish: a key technology for cell sheet tissue engineering
    Kobayashi, Jun
    Okano, Teruo
    SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2010, 11 (01)
  • [45] Construction of Pedicled Smooth Muscle Tissues by Combining the Capsule Tissue and Cell Sheet Engineering
    Jia, Zhiming
    Guo, Hailin
    Xie, Hua
    Zhou, Junmei
    Wang, Yaping
    Bao, Xingqi
    Huang, Yichen
    Chen, Fang
    CELL TRANSPLANTATION, 2019, 28 (03) : 328 - 342
  • [46] Effect of low oxygen tension on tissue-engineered cartilage construct development in the concentric cylinder bioreactor
    Saini, S
    Wick, TM
    TISSUE ENGINEERING, 2004, 10 (5-6): : 825 - 832
  • [47] Tuning Cell and Tissue Development by Combining Multiple Mechanical Signals
    Sinha, Ravi
    Verdonschot, Nico
    Koopman, Bart
    Rouwkema, Jeroen
    TISSUE ENGINEERING PART B-REVIEWS, 2017, 23 (05) : 494 - 504
  • [48] A Review of In Vivo and Clinical Studies Applying Scaffolds and Cell Sheet Technology for Periodontal Ligament Regeneration
    Bousnaki, Maria
    Beketova, Anastasia
    Kontonasaki, Eleana
    BIOMOLECULES, 2022, 12 (03)
  • [49] Functional Evaluation of Two Corneal Endothelial Cell-Based Therapies: Tissue-Engineered Construct and Cell Injection
    Gary S. L. Peh
    Hon Shing Ong
    Khadijah Adnan
    Heng-Pei Ang
    Chan N. Lwin
    Xin-Yi Seah
    Shu-Jun Lin
    Jodhbir S. Mehta
    Scientific Reports, 9
  • [50] Functional Evaluation of Two Corneal Endothelial Cell-Based Therapies: Tissue-Engineered Construct and Cell Injection
    Peh, Gary S. L.
    Ong, Hon Shing
    Adnan, Khadijah
    Ang, Heng-Pei
    Lwin, Chan N.
    Seah, Xin-Yi
    Lin, Shu-Jun
    Mehta, Jodhbir S.
    SCIENTIFIC REPORTS, 2019, 9 (1)